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Research on the Optimal Vegetation Cover for Remote Sensing Assessment of Soil Erosion Risk Using the Temporal Matching Relationship between Rainfall and Vegetation

机译:利用降雨与植被的时间匹配关系对土壤侵蚀风险进行遥感最优植被覆盖的研究

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摘要

Vegetation cover derived from remote sensing image is widely used for soil erosion risk assessment, but there is no clear guideline to select the most appropriate temporal satellite data. It is common practice that satellite data during growing season are randomly selected and used in soil erosion risk assessment. However, the effectiveness of vegetation in protecting the soil is quite different even if it is the same growing season since vegetation covers change as they grow. This article aims to provide a method of choosing optimal vegetation cover for studying soil erosion risk using remote sensing, that is, the vegetation cover in the most appropriate temporal period. Based on the temporal relationship of the two most active impact factors, rainfall and vegetation, an index of RV is developed and used to indicate the relative erosion risk during the year. The results show that annual variation of rainfall is significant, and vegetation is relatively stable, resulting in their matching relationship is different in each year. The correlation coefficient reaches 0.89 between RV and real sediment transport during the period when rainfall can cause soil erosion. In other words, RV is a good indicator of soil erosion. Therefore, there is a good correlation between RV maximum and the optimal vegetation cover, which can help facilitate erosion research in the future, showing good potential for successful application in other places.
机译:来自遥感图像的植被被广泛用于土壤侵蚀风险评估,但是没有明确的准则来选择最合适的时间卫星数据。通常的做法是随机选择生长季节的卫星数据,并将其用于土壤侵蚀风险评估。但是,即使在同一生长季节,植被在保护土壤方面的效果也大不相同,因为植被覆盖随着生长而变化。本文旨在提供一种选择最佳植被覆盖率的方法,以通过遥感研究土壤侵蚀风险,即最合适的时间段内的植被覆盖率。基于两个最活跃的影响因子(降雨和植被)的时间关系,制定了RV指数,用于指示一年中的相对侵蚀风险。结果表明,降雨的年变化很大,植被相对稳定,因此它们的匹配关系每年都不同。在降雨可能导致水土流失期间,RV与实际泥沙输送之间的相关系数达到0.89。换句话说,RV是土壤侵蚀的良好指标。因此,RV最大值与最佳植被覆盖度之间具有良好的相关性,这有助于将来进行侵蚀研究,显示出在其他地方成功应用的良好潜力。

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